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Inhibition of Mixed Biofilms of Candida albicans and Methicillin-Resistant Staphylococcus aureus by Positively Charged Silver Nanoparticles and Functionalized Silicone Elastomers

机译:通过带正电荷的银纳米粒子和官能化硅氧烷弹性体抑制Candida albicils和甲氧西林耐金黄色葡萄球菌的混合生物膜

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摘要

Both bacterial and fungal organisms display the ability to form biofilms; however, mixed bacterial/fungal biofilms are particularly difficult to control and eradicate. The opportunistic microbial pathogens Candida albicans and Staphylococcus aureus are among the most frequent causative agents of healthcare-acquired infections, and are often co-isolated forming mixed biofilms, especially from contaminated catheters. These mixed species biofilms display a high level of antibiotic resistance; thus, these infections are challenging to treat resulting in excess morbidity and mortality. In the absence of effective conventional antibiotic treatments, nanotechnology-based approaches represent a promising alternative for the treatment of highly recalcitrant polymicrobial biofilm infections. Our group has previously reported on the activity of pure positively charged silver nanoparticles synthesized by a novel microwave technique against single-species biofilms of C. albicans and S. aureus. Here, we have expanded our observations to demonstrate that that silver nanoparticles display dose-dependent activity against dual-species C. albicans/S. aureus biofilms. Moreover, the same nanoparticles were used to functionalize catheter materials, leading to the effective inhibition of the mixed fungal/bacterial biofilms. Overall, our results indicate the potent activity of silver nanoparticles against these cross-kingdom biofilms. More studies are warranted to examine the ability of functionalized catheters in the prevention of catheter-related bloodstream infections.
机译:细菌和真菌生物均显示形成生物膜的能力;然而,混合细菌/真菌生物膜特别难以控制和根除。机会主义的微生物病原体念珠菌和金黄色葡萄球菌是医疗保健收购感染的最常见的致病药物中,并且通常是共同分离的形成混合生物膜,尤其是受污染的导管。这些混合物种生物膜显示出高水平的抗生素抗性;因此,这些感染是挑战治疗,导致发病率过多和死亡率。在没有有效的常规抗生素治疗的情况下,基于纳米技术的方法代表了对高顽醋栗多发性生物膜感染的有前途的替代方案。我们的小组先前已经报道了通过新型微波技术合成的纯正电荷的银纳米颗粒,针对C. albicils和金黄色葡萄球菌的单一物种生物膜合成。在这里,我们已经扩展了我们的观察结果,以证明银纳米粒子会对双种C. albicans / s显示剂量依赖性活性。金黄色葡萄球菌生物膜。此外,使用相同的纳米颗粒用于使导管材料官能化,导致混合真菌/细菌生物膜的有效抑制。总体而言,我们的结果表明银纳米粒子对这些跨王国生物膜的有效活性。需要更多的研究来检查功能化导管在预防导管相关的血流感染的能力。

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